Fluid ejection device including recirculation system

- Hewlett Packard

A fluid ejection device may include a first channel having a first end and a second end, a first drop ejector along the first channel, a second channel having a first end and a second end, a second drop ejector along the second channel, a third channel extending between and connecting the first end of the first channel and the first end of the second channel, a fourth channel extending between and connecting the second end of the firs channel and the second end of the second channel and a fifth channel extending between and connecting the third channel and the fourth channel.

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Description
CROSS-REFERENCE TO RELATED PATENT APPLICATIONS

The present application is a continuation application of U.S. patent application Ser. No. 16/217,008, filed Dec. 11, 2018, and which is a continuation application of U.S. patent application Ser. No. 15/432,400, filed Feb. 14, 2017, which is a continuation application of U.S. patent application Ser. No. 14/737,050 filed Jun. 11, 2015, which is a continuation application of U.S. patent application Ser. No. 13/643,646, filed Oct. 26, 2012, which is a US National Application claiming domestic benefit from PCT/US2010/035697, filed May 21, 2010, each of which is incorporated herein by reference.

BACKGROUND

Inkjet printing has become widely known and is most often implemented using thermal inkjet technology. Such technology forms characters and images on a medium, such as paper, by expelling droplets of ink in a controlled fashion so that the droplets land on the medium. The printer, itself, can be conceptualized as a mechanism for moving and placing the medium in a position such that the ink droplets can be placed on the medium, a printing cartridge which controls the flow of ink and expels droplets of ink to the medium, and appropriate hardware and software to position the medium and expel droplets so that a desired graphic is formed on the medium. A conventional print cartridge for an inkjet type printer includes an ink containment device and an ink-expelling apparatus or fluid ejection device, commonly known as a printhead, which heats and expels ink droplets in a controlled fashion.

The printhead is a laminate structure including a semiconductor or insulator base, a barrier material structure that is honeycombed with ink flow channels, and an orifice plate that is perforated with nozzles or orifices. The heating and expulsion mechanisms consist of a plurality of heater resistors, formed on the semiconductor or insulating substrate, and are associated with an ink-firing chamber and with one of the orifices in the orifice plate. Each of the heater resistors are connected to the controlling mechanism of the printer such that each of the resistors may be independently energized to quickly vaporize and to expel a droplet of ink.

During manufacture, ink with a carefully controlled concentration of dissolved air is sealed in the ink reservoir. When some types of ink reservoir are installed in a printer, the seal is broken to admit ambient air to the ink reservoir. Exposing of the ink to the ambient air causes the amount of air dissolved in the ink to increase over time. When additional air becomes dissolved in the ink stored in the reservoir, this air is released by the action of the firing mechanism in the firing chamber of the printhead. However, an excess of air accumulates as bubbles. Such bubbles can migrate from the firing chamber to other locations in the printhead where they can block the flow of ink in or to the printhead. Air bubbles that remain in the printhead can degrade the print quality, can cause a partially full print cartridge to appear empty, and can also cause ink to leak from the orifices when the printer is not printing.

Inkjet printing systems use pigment-based inks and dye-based inks. Pigment-based inks contain an ink vehicle and insoluble pigment particles often coated with a dispersant that enables the particles to remain suspended in the ink vehicle. Pigment-based inks tend to be more durable and permanent than dye-based inks. However, over long periods of storage of an inkjet pen containing pigment-based inks, gravitational effects on pigment particles and/or degradation of the dispersant can cause pigment settling or crashing, which can impede or completely block ink flow to the firing chambers and nozzles in the printhead. The result is poor performances, such as poor out-of-box performances (i.e. performance after shelf time) by the printhead and reduced image quality.

Furthermore, local evaporation of volatile components of ink, mostly water for aqueous inks and solvent for non-aqueous inks, results in pigment-ink vehicle separation (PIVS) or increased ink viscosity and viscous plug formation that prevents immediate printing. Printing systems tend to use thus massive ink spitting (ink wasting) before print job. This amount of ink sometimes exceeds multiple times the amount of ink used for image on paper.

Thus, although several suitable inkjet printheads are currently available, improvements thereto are desirable to obtain more durable and reliable printheads that will produce higher quality print images on print media surface.

BRIEF DESCRIPTION OF THE DRAWING

FIG. 1 is a perspective view of one embodiment of an inkjet pen.

FIG. 2 is a top view of one embodiment of a fluid ejection device containing a plurality of recirculation systems.

FIG. 3 is a cross-sectional side view of one embodiment of the fluid ejection device taken along line A-A of FIG. 2.

FIGS. 4A and 4B are top views of embodiments of the recirculation system present in the fluid ejection device.

FIG. 5 is a top view of one embodiment of the recirculation system present in the fluid ejection device.

FIGS. 6A and 6B are top views of embodiments of recirculation systems including a plurality of drop firing chambers that are present in the fluid ejection device.

FIGS. 7A, 7B and 7C are top views of embodiments of coupled recirculation systems that are present in the fluid ejection device.

FIGS. 8A, 8B and 8C are top views of embodiments of coupled recirculation systems that contain a plurality of drop firing chambers that are present in the fluid ejection device.

DETAILED DESCRIPTION

Before particular embodiments of the present invention are disclosed and described, it is to be understood that the present disclosure is not limited to the particular process and materials disclosed herein. It is also to be understood that the terminology used herein is used for describing particular embodiments only and is not intended to be limiting, as the scope of the present invention will be defined only by the claims and equivalents thereof. In describing and claiming the present exemplary composition and method, the following terminology will be used: the singular forms “a”, “an”, and “the” include plural referents unless the context clearly dictates otherwise. When referring to the drawings, reference numerals denote the same elements throughout the various views.

Representative embodiments of the present disclosure include a fluid ejection device in the form of a printhead used in inkjet printing. However, it should be noted that the present disclosure is not limited to inkjet printheads and can be embodied in other fluid ejection devices used in a wide range of applications.

A system and method for re-circulating printing fluid are provided. Such system includes a fluid ejection device or printhead 12 including a recirculation system 15. In some embodiments, the fluid ejection device 12 contains at least one recirculation system that includes, at least, one drop generator 24; recirculation channels including an inlet channel 16, an outlet channel 17 and a connection channel 18 and a fluid feedhole 22 that communicates with the drop generator 24 via the inlet channel 16 and the outlet channel 17 of the recirculation channels. In some examples, the recirculation system is an asymmetrical short loop recirculation system. Such asymmetry results in pressure vector that lead to printing fluid circulation.

The present disclosure refers also to an inkjet pen containing such fluid ejection device. In some examples, the inkjet pen contains also a plurality of orifices or nozzles through which the drops of printing fluid are ejected.

In some embodiments, the fluid ejection device, containing the recirculation system as defined herein, is primarily used for inkjet imaging application. In some examples, the fluid ejection device includes a recirculation system that is a short loop recirculation system.

The inkjet pen containing the fluid ejection device or printhead of the present disclosure presents excellent printing capability as well as high resolution and high ink efficiency. Indeed, the use of the fluid ejection device or printhead, containing the recirculation system, increases ink efficiency utilization by improving nozzle health, by reducing the pigment-vehicle separation phenomenon and by managing and reducing chamber air bubbles. In addition, the use of the fluid ejection device or printhead decreases de-capping problems and potential kogation issues.

The use of the fluid ejection device significantly reduces or eliminates pigment-ink vehicle separation by ink mixing and ink local agitation in the recirculation fluidic system. The recirculation system helps to avoid the settling or crashing of pigments that often occurs in pigment-based ink compositions. Thus, in some embodiments, the inkjet pen containing the fluid ejection device according to the present disclosure presents good image quality even after prolonged idling period of inkjet pens in printer.

FIG. 1 shows an illustrative embodiment of an inkjet pen 10 having a fluid ejection device in the form of a printhead 12. The inkjet pen 10 includes a pen body 14 that contains a printing fluid supply. As used herein, the term “printing fluid” refers to any fluid used in a printing process, including but not limited to inks, pre-treatment compositions, fixers, etc. In some examples, the printing fluid is an inkjet ink. In some other examples, the printing fluid is a pigment-based ink composition. Other possible embodiments include fluid ejection devices that eject fluids other than printing fluid. The printing fluid supply can include a fluid reservoir wholly contained within the pen body 14 or, alternatively, can include a chamber inside the pen body 14 that is fluidly coupled to one or more off-axis fluid reservoirs (not shown). The printhead 12 is mounted on an outer surface of the pen body 14 in fluid communication with the printing fluid supply. The printhead 12 ejects drops of printing fluid through a plurality of nozzles 11 formed therein. Although a relatively small number of nozzles 11 are shown in FIG. 1, the printhead 12 may have two or more columns with more than one hundred nozzles per column. Appropriate electrical connectors 13 (such as a tape automated bonding “flex tape”) are provided for transmitting signals to and from the printhead 12.

The fluid ejection device or printhead 12 of an inkjet printer forms part of a print cartridge or inkjet pen 10 mounted in a carriage. The carriage moves the print cartridge or inkjet pen back and forth across the paper. The inkjet pen 10 operates by causing a small volume of ink to vaporize and be ejected from a firing chamber through one of a plurality of orifices or nozzles 11 so as to print a dot of ink on a recording medium such as paper. The orifices or nozzles 11 are often arranged in one or more linear nozzle arrays. The orifices or nozzles 11 are aligned parallel to the direction in which the paper is moved through the printer and perpendicular to the direction of motion of the printhead. The properly sequenced ejection of ink from each orifice causes characters, or other images, to be printed in a swath across the paper.

FIG. 2 shows an illustrative embodiment of a fluid ejection device (or printhead) 12 containing a plurality of recirculation system 15 and a plurality of drop generator 24. In some examples, each recirculation system 15 contains at least a drop generator 24; each drop generator 24 includes a firing element 19 and a firing chamber 26. In some other examples, the drop generator 24 includes a nozzle 11. As illustrated herein, the fluid ejection device contains a plurality of recirculation systems 15 each including recirculation channels having an inlet channel 16, an outlet channel 17 and a connection channel 18.

In some embodiments, the fluid ejection device 12 contains a fluid feedhole or ink slot 22 that communicates with drop generator 24 via the inlet channel 16 and the outlet channel 17 of the recirculation channel. In some examples, the recirculation system 15, containing inlet channel 16, outlet channel 17 and connection channel 18, has a U-shape and forms a short loop recirculation system. In such system, the printing fluid 20 enters the recirculation system via the inlet channel 16, goes to the drop generator 24, follows the flow via the connection channel 18 and goes back to the fluid feed hole or ink slot 22 via the outlet channel 17.

Although FIGS. 2 and 3 illustrate one possible printhead configuration, it should be noted that other configurations might be used in the practice of the present disclosure.

FIG. 3 shows an illustrative cross-sectional view of one embodiment of the fluid ejection device 12 taken along line A-A of FIG. 2. Referring to FIG. 3, the fluid ejection device or printhead 12 includes a substrate 21 having at least one fluid feed hole 22 or ink slot 22 formed therein with a plurality of drop generators 24 arranged around the fluid feed hole 22. The fluid feedhole 22 is an elongated slot in fluid communication with the printing fluid supply. Each drop generator 24 includes one of the nozzles 11, a firing chamber 26, an inlet channel 16 or an outlet channel 17 establishing fluid communication between the fluid feed hole 22 and the firing chamber 26, and a firing element 19 disposed in the firing chamber 26.

The feed channel can be either an inlet channel 16 or an outlet channel 17 depending on the direction of the printing fluid flow along the recirculation system 15. The firing elements 19 can be any device, such as a resistor or piezoelectric actuator, capable of being operated to cause drops of fluid to be ejected through the corresponding nozzle 11. In some examples, the firing element 19 is a resistor. In the illustrated examples, an oxide layer 23 is formed on a front surface of the substrate 21, and a thin film stack 25 is applied on top of the oxide layer 23. The thin film stack 25 generally includes an oxide layer, a metal layer defining the firing elements 19 and conductive traces, and a passivation layer. A chamber layer 27 that defines the recirculation system 15 is formed on top of the thin film stack 25. A top layer 28 that defines the nozzles 11 and the recirculation system 15 is formed on top of the chamber layer 27. The recirculation system 15, such as illustrated herein, represents the inlet channel 16 or the outlet channel 17 and the connection channel 18.

Each orifice or nozzle 11 constitutes the outlet of a firing chamber 26 in which is located a firing element 19. In printing operation, a droplet of printing fluid 20 is ejected from a nozzle 11 by activating the corresponding firing element 19. The firing chamber 26 is then refilled with printing fluid, which flows from the fluid feed hole 22 via the recirculation channels through the inlet channel 16. For example, to print a single dot of ink in a thermal inkjet printer, in the instance where the firing elements 19 are resistors, an electrical current from an external power supply that is passed through a selected thin film resistor. The resistor is thus energized with a pulse of electric current that heated the resistor 19. The resulting heat from the resistor 19 superheats a thin layer of the adjacent printing fluid causing vaporization. Such vaporization creates a vapor bubble in the corresponding firing chamber 26 that quickly expands and forces a droplet of printing fluid to be ejected through the corresponding nozzle 11. When the heating element cools, the vapor bubble quickly collapses, drawing more printing fluid into the firing chamber 26 in preparation for ejecting another drop from the nozzle 11.

The expanding bubble, from firing element or resistor 19, also pushes printing fluid backward in inlet channel 16 or outlet channel 17 toward the printing fluid supply. Such bubbles create thus a shock wave that results in directional pulsed flows and that create printing fluid circulation along the recirculation channels and along the recirculation system. Thus, the recirculation of the printing fluid involves air bubbles contained in the printing fluid and purges them from firing chambers 26.

In some examples, the collapsing bubble pulls the printing fluid 20 through the outlet channel 17, and allows thus a partial refilling of the firing chamber 26. Firing chamber refill is completed by capillary action. In addition, such capillary action make the printing fluid 20 moves from the fluid feedhole 22 to the next inlet channel 16 of the recirculation system and then to the drop generator 24. Thus, in some examples, the fluid ejection device according to the present disclosure does not accumulate bubbles in the firing chamber and does not present disadvantages often associated with the presence of such air bubbles.

FIGS. 4A and 4B show illustrative embodiments of fluid ejection device or printhead 12 containing recirculation system 15. In such illustrated embodiment, recirculation system 15 contains one drop generator 24, including a nozzle 11 and a firing element 19, and a recirculation channel including an inlet channel 16, an outlet channel 17 and a connection channel 18. The fluid ejection device contains an fluid feedhole 22 that communicates with drop generator 24 via inlet channel 16 and outlet channel 17.

As illustrated in FIGS. 4A and 4B, fluid ejection device 12 includes one U-shaped recirculation system having a recirculation system 15 that includes inlet channel 16 and outlet channel 17 in communication with the fluid feedhole 22. As illustrated herein, recirculation system 15 forms an arch. In some examples, the U-shaped recirculation system 15 encompasses an inlet channel 16 and an outlet channel 17 that help conveying the printing fluid and that are situated parallel from each other. In some other examples, inlet channel 16 and outlet channel 17 of the recirculation system are connected with each other via a connection channel 18 in view of forming the recirculation channel or system 15.

In some examples, as illustrated in FIG. 4A, drop generator 24 is located in the inlet channel 16. This configuration means thus that printing fluid flows from inlet channel 16 through drop generator, through connection channel 18 and then go back to fluid feedhole 22 via outlet channel 17.

In some examples, as illustrated in FIG. 4B, the drop generator 24 is located in the outlet channel 17. This configuration means thus that the fluid flows from inlet channel 16, go though connection channel 18 and then go through drop generator 24 before returning to fluid feedhole 22 via outlet channel 17. In both of these situations, when the printing fluid flows through drop generator 24, a printing fluid drop can be ejected through nozzle onto printed media without influencing printing fluid direction flow.

In some embodiments, as illustrated in FIGS. 4A and 4B, the fluid ejection device 12 includes auxiliary resistor 30 located in the recirculation system 15. The auxiliary resistor 30 can be located in inlet channel 16 (such as illustrated in FIG. 4A) or in outlet channel 17 (such as illustrated in FIG. 4B). As used herein, the auxiliary resistor 30 can be compared to a “drop generator” that is not able to eject a drop, i.e. that does not have nozzle but that contains firing element 19 such as resistor or piezoelectric actuator. In other word, the auxiliary resistor 30 is able to create a bubble without ejecting a drop of ink, creating thus waves that induce a print fluid flow 20. Without being linked by any theory, it is believed that the activation of such auxiliary resistor 30 improves recirculation phenomena on the recirculation system 15 of fluid ejection device 12.

In some embodiments, auxiliary resistor 30 operates at variable and at low firing rate of firing energies between print jobs, enabling ink mixing and recirculation with low thermal load. In some examples, the print fluid flow 20, which circulates in recirculation system 15 of fluid ejection device 12, is induced by the firing element 19 of drop generator 24 or by the auxiliary resistor 30. In some examples, the firing element 19 of drop generator 24 is heated with an amount of energy that is below the turn-on energy (TOE). In some other examples, the auxiliary resistor 30 is heated with an amount of energy that is below the turn-on energy (TOE) or that is above the TOE (i.e. full energy pulse). As used herein, turn-on energy (TOE) is the amount of energy that is delivered to a printhead to cause a drop to be ejected. When firing element 19 of drop generator 24 is fired with such turn-on energy, there is no ejection of printing fluid or ink drop. However, firing element 19 of drop generator 24 is able to generate bubbles that collapse and that create opposite direction pulsed flow. Such energy and generation of bubbles create thus shock wave that generates both directional pulsed flows that allow printing fluid 20 to circulate along recirculation system 15. Thus, in some embodiments, the firing element 19 of the drop generator 24 or the auxiliary resistor 30 acts as a pump that is activated by sub-TOE energy pulse.

In some other embodiments, the recirculation system 15 of fluid ejection device 12 of the present disclosure is an asymmetrical recirculation system. Such asymmetry results in pressure vectors that make printing fluid circulates. The recirculation system 15 can have the form of a diode. As used herein, the term “diode” refers to a fluid structure designed to create preferential flow in one direction.

In some embodiments, the recirculation system 15 of fluid ejection device 12 is a thermal inkjet short-loop recirculation system that is based on micro-fluidic diode with sub-TOE operation. The recirculation system 15 can be considered as a “thermal inkjet resistor based pump” that includes asymmetrical fluidic channel and resistor operating in pre-critical pressure mode. By “pre-critical pressure mode” it is meant herein that the system operates in a sub-TOE and non-drop ejection mode.

In some examples, fluid ejection device 12 encompasses a recirculation system 15 that has the form of an asymmetrical fluidic channel with at least one drop generator 24 or one auxiliary resistor 30 that acts as a pump which is activated by sub-TOE energy pulse and that helps the circulation of printing fluid flow. Such recirculation system 15 enables thus recirculation of the fluid and improves mixing efficiency of the printing fluid.

Such as illustrated in FIG. 4A, the printing fluid 20 flows from fluid feedhole 22, through auxiliary resistor 30, through drop generator 24 and then go back to feedhole 22. Without being linked by any theory, it is believed that this flow direction results from circulation of the printing fluid flow created by bubbles and sub-TOE or full energy pulse, generated from the auxiliary resistor 30.

Such as illustrated in FIG. 4B, the printing fluid 20 flows from fluid feedhole 22, through drop generator 24, through auxiliary resistor 30 and then go back to feedhole 22. Without being linked by any theory, it is believed that this flow direction results from the firing element 19 that eject drops of printing fluid and that, in the same time, generates fraction of bubbles that creates circulation of the printing fluid flow.

As illustrated in FIG. 5, in some examples, the fluid ejection device 12 includes a recirculation system 15 that further contains particle tolerant architectures 31. As used herein, particle tolerant architectures (PTA) refer to barrier objects that are placed in the printing fluid path to prevent particles from interrupting ink or printing fluid flow. In some examples, particle tolerant architectures 31 prevent dust and particles from blocking firing chambers 26 and/or nozzles 11. As illustrated in FIG. 5, the fluid ejection device 12 can also includes a recirculation system 15 that can contain pinch points 33 that are used to control blowback of printing fluid during drop ejection.

As illustrated in FIG. 5, in some other examples, the fluid ejection device 12 includes a recirculation system 15 that further contains non-moving part valves 32. As used herein, non-moving part valve (NMPV) refers to a non-moving object that is positioned and/or designed to regulate the flow of a fluid. It is believed that the presence of such valves 32 improves the recirculation efficiency and minimize nozzle cross talk. As “nozzle cross talk”, it is meant herein that un-intended fluids flow between neighboring firing chambers.

In some embodiments, the fluid ejection device 12 includes a recirculation system that further contains non-moving part valves 32 and particle tolerant architectures 31. Particle tolerant architectures 31 can be located in the inlet channel 16 and/or in the outlet channel 17 of the recirculation system 15. The non-moving part valves 32 can be located in the connection channel 18 of the recirculation system 15. In some examples, the non-moving part valves 32 are located in connection channel 18 and in the outlet channel 17 of the recirculation system 15 of the fluid ejection device 12.

In some examples, as illustrated in FIG. 5, the recirculation flow direction corresponds to firing element activation. Without being linked by any theories, it is believed that, when the auxiliary resistor is activated, the recirculation flow can be reversed.

In some embodiments, as illustrated in FIGS. 6A and 6B, the recirculation system 15 of the fluid ejection device 12 includes a plurality of drop generators 24. In some examples, the recirculation system 15 is a short loop micro-fluidic channel and includes two or a plurality of drop generators 24 each containing a firing chamber 26 and a firing element 19.

In some examples, as illustrated in FIG. 6A, the fluid ejection device 12 includes a recirculation system 15 that encompasses two drop generators 24, one inlet channel 16, one connection channel 18 and two outlet channels 17. With such configuration, the printing fluid 20 enters the recirculation system via the inlet channel 16 and exits the recirculation system through drop generators 24 via both outlet channels 17 to go back to feedhole 22. Auxiliary resistor 30 may be present in the inlet channel 16.

In some other examples, as illustrated in FIG. 6B, the fluid ejection device 12 includes a recirculation system 15 that encompasses two drop generators 24, two inlet channels 16, one connection channel 18 and one outlet channel 17 and that contains non-moving part valves 32 and particle tolerant architectures 31. With such configuration, the printing fluid 20 enters the recirculation system via inlet channels 16 and exits the recirculation system through drop generator 24 via the outlet channel 17 to go back to the feedhole 22. In such example, auxiliary resistor 30 is present in one of the inlet channel 16 and a drop generator 24 is present in the other inlet channel 16.

In some embodiments, the fluid ejection device 12 may include one, two or a plurality of drop generators 24 connected in a daisy chain fashion for increased recirculation efficiency. Each drop generator 24 includes a firing chamber 26 and a firing element 19 disposed in its firing chamber, and corresponding open orifices (nozzles 11) to eventually eject drops during printing job. In some examples, the drop generators 24 of the fluid ejection device 12 are involved in recirculation process and are capable of jetting ink without a loss of pen resolution during printing.

FIGS. 7A, 7B and 7C refer to examples of fluid ejection device 12 containing recirculation systems 15 that are coupled together. In some exemplary embodiments, FIGS. 7A and 7B illustrate recirculation systems 15 that are coupled together via fluid feedhole 22. In such examples, each recirculation system 15 includes a drop generator 24 that is located in the inlet channel 16. With such configuration, the printing fluid 20 flows from inlet channel 16 through the drop generator, through connection channel 18 and then go back to feedhole 22 via outlet channel 17.

In some other exemplary embodiments, such as illustrated in FIG. 7A, the printing fluid flow 20 goes back to the slot 22 and to the next drop generator 24 via the next inlet channel 16 which is located following the outlet channel 17. As illustrated in FIG. 7A, the recirculation system induces a symmetrical flow. In some examples, such as illustrated in FIG. 7B, the printing fluid flow 20 goes back to the feedhole 22 and to next drop generator 24 via the next inlet channel 16 which is located after a second outlet channel 17. As illustrated in FIGS. 7A and 7B, the recirculation systems 15 enable printing fluid recirculation and printing fluid mixing with irreversible direction of the recirculation flow.

FIG. 7C illustrates examples of two recirculation systems 15 that are coupled together via feedhole 22 and via outlet channel 17. In this example, the recirculation system 15 includes two drop generators 24 that are located in inlet channels 16. With such configuration, the printing fluid 20 flows from both inlet channels 16 through drop generators, then goes back to the feedhole 22 through connection channel 18 and via the coupled outlet channel 17. As illustrated herein, recirculation systems 15 enable printing fluid recirculation and printing fluid mixing with reversible direction of the recirculation flow. The recirculation system 15, as illustrated in FIG. 7C, has an asymmetrical flow.

Within such examples, the recirculation system 15 contains drop generators that include a firing elements 19 that generate bubbles with an amount of energy that is below the turn-on energy (TOE). Every time the ink flow through drop generators 24, ink drop can be ejected through the nozzle onto the printed media without influencing ink direction flow.

FIGS. 8A, 8B and 8C represent exemplary embodiments of fluid ejection devices 12 containing recirculation systems 15 that are coupled together and that contain a plurality of drop generators 24. In such examples, each inlet channel 16 or outlet channel 17 includes a drop generator 24. Each drop generator 24 contains a nozzle 11, a firing chamber 26 and a firing element 19 disposed in firing chamber 26. With such configuration, printing fluid 20 flows from inlet channels 16 through drop generators 24, through connection channel 18 and then go back to feedhole 22 via outlet channels 17 each containing drop generator 24.

In these examples, when the recirculation systems 15 contains several drop generators, at least one drop generator includes a firing element 19 that generates bubbles with an amount of energy that is below the turn-on energy (TOE).

In some examples, as illustrated in FIG. 8A, the recirculation system 15 induces an asymmetric flow. In some other examples, when central firing element 19 is activated, as illustrated in FIG. 8B, the recirculation system 15 induces a symmetrical flow. Within such configurations, the recirculation system 15 enables plurality of firing and recirculation sequences and enables reversible and multidirectional recirculation flows. In some other examples, to achieve non zero recirculation net flow, a recirculation system is asymmetrical with reference to firing element or auxiliary resistor.

In some embodiments, as illustrated in FIG. 8C, the recirculation system 15 contains several drop generators and includes non-moving part valves 32 and particle tolerant architectures 31. In some examples, all channels 16, 17 and 18 of the recirculation system include non-moving part valves 32 for coupling efficiency control. Indeed, it is believed that such valves may improve recirculation efficiency and minimize nozzle cross talk. Furthermore, channels can contain particle tolerant architectures 31 located before drop generators 24. In some examples, drop generators 24 have open orifices, such as nozzles 11, and can either be used to recirculate ink in firing chamber at sub-TOE firing pulses or can be used to eject drops of ink.

In some other examples, all firing chambers 26, having a firing element 19 present in the fluid ejection device 12, can operates with variable low firing rate and with sub-TOE firing energies between print jobs. With such low firing energy, the recirculation system 15 enables ink mixing and recirculation with low thermal load.

In some embodiment, the fluid ejection device contains a recirculation system that include a plurality of drop generators 24, at least an auxiliary resistor, non-moving part valves 32 and particle tolerant architecture 31. Therefore, fluid ejection device or printhead 12 containing recirculation systems 15 enables a plurality of firing and recirculation sequences. Such recirculation system 15 enables thus reversible and multidirectional recirculation flows. In some examples, the activation sequences of re-circulating firing chamber are coordinated in view of obtaining optimal recirculation and following mixing of the printing fluid.

In some embodiments, the fluid ejection device is designed to enable directional cross talk between drop generator and firing chamber sufficient to support recirculation net flow and limited coupling to avoid drop ejection in neighboring chambers. Any kind of NMPV may be used to optimize cross coupling of the firing chambers. Many types of fluid valves could be designed to reduce the amount of fluid that flows between chambers in an undesirable way (cross talk reduction).

The fluid ejection device according to the present disclosure can be used in any type of inkjet pen, or can be used indifferently in edge line technology or in wide page array technology.

An exemplary method of inducing printing fluid or ink flow, in the recirculation system 15 of fluid ejection device 12 of the present disclosure, includes applying a sub-TOE or full energy pulse to auxiliary resistor 30 and/or applying a sub-TOE energy pulse to firing element 19 of the drop generator 24. Within such method, the printing fluid 20 circulates along recirculation channels of the recirculation system 15. In addition, recirculation phenomenon continues working at drop firing energies during printing job and helps to refresh ink, manage nano-air (air bubbles in firing chamber) and purge them from firing chambers.

In some examples, a method of using the fluid ejection device 12 includes dormant period followed by purging and mixing period wherein the printing fluid is purged and mixed. The purging and mixing periods are induced by application of high firing rate at a sub-TOE or full energy pulse to auxiliary resistor 30 just before printing job and/or by application of a sub-TOE energy pulse to firing element 19 of the drop generator 24 just before printing job.

In some examples, a method of jetting printing fluid drops, from the fluid ejection device 12 such as described herein, includes: inducing a printing fluid flow in the recirculation system 15 by applying a sub-TOE or a full energy pulse to auxiliary resistor 30 and/or applying a sub-TOE energy pulse to firing element 19 of the drop generator 24; and applying an energy sufficient to able printing fluid to drop by the orifice 11 of the drop generator 24.

In some other examples, a method of jetting printing fluid drops, from the fluid ejection device 12 such as described herein, includes inducing a printing fluid flow in the recirculation system 15 by applying an energy sufficient to able printing fluid to drop by the orifice 11 of the drop generator 24. In some embodiments, the printing fluid is an ink composition. In some other embodiments, the printing fluid is an inkjet ink composition.

The preceding description has been presented only to illustrate and describe exemplary embodiments of the present disclosure. Although certain example methods, apparatus and articles of manufacture have been described herein, the scope of coverage of this patent is not limited thereto. On the contrary, this patent covers all methods, apparatus and articles of manufacture fairly falling within the scope of the claims either literally or under the doctrine of equivalents.

Claims

1. A fluid ejection pen comprising:

electrical connectors to transmit and receive signals indicative of pressure vectors for printing fluid to flow through a plurality of recirculation channels in fluid connection with a fluid feedhole slot; and
responsive to reception of signals indicative of pressure vectors, causing fluid to flow through the plurality of recirculation channels based on the pressure vectors, wherein recirculation of fluid is distinct from fluid flow based on fluid ejection.

2. The fluid ejection pen of claim 1, wherein the pen is arranged within a printing system.

3. The fluid ejection pen of claim 2, wherein the printing system is configured to enable image formation on roll-based media.

4. The fluid ejection pen of claim 1, wherein the fluid feedhole slot is arranged to feed fluid into an inlet channel of the plurality of recirculation channels.

5. The fluid ejection pen of claim 4, wherein the fluid feedhole slot is arranged to receive fluid from an outlet channel of the plurality of recirculation channels.

6. The fluid ejection pen of claim 1, wherein the pressure vectors are asymmetric.

7. The fluid ejection pen of claim 6, wherein the recirculation of fluid is based on the asymmetric pressure vectors.

8. The fluid ejection pen of claim 6, further comprising drop generators arranged within the plurality of recirculation channels.

9. The fluid ejection pen of claim 8, wherein the drop generators are arranged within the plurality of recirculation channels such that an inlet channel of the plurality of recirculation channels is a different length than an outlet channel of the plurality of recirculation channels.

10. The fluid ejection pen of claim 9, wherein the inlet channel is longer than the outlet channel.

11. The fluid ejection pen of claim 8, wherein the signals indicative of pressure vectors comprise signals to cause sub-TOE non-drop ejection activation of the drop generators.

12. The fluid ejection pen of claim 1 further comprising a fluid ejection device in which the plurality of recirculation channels and the fluid feedhole slot are formed.

13. The fluid ejection pen of claim 12, wherein the plurality of recirculation channels are formed in a chamber layer of the fluid ejection device, the fluid feedhole slot is formed in a substrate layer beneath the chamber layer, and wherein the fluid feedhole slot and the plurality of recirculation channels are arranged such that fluid is to flow from the fluid feedhole slot and into the chamber layer and then the plurality of recirculation channels.

14. The fluid ejection pen of claim 13, wherein the fluid feedhole slot and the plurality of recirculation channels are further arranged such that the fluid is to flow back into the fluid feedhole slot from the plurality of recirculation channels.

15. A fluid ejection device comprising:

a substrate in which a plurality of fluid feedhole slots is formed;
a chamber layer in which a plurality of recirculation channels is formed, the plurality of recirculation channels in fluid communication with the plurality of fluid feedhole slots, wherein the plurality of recirculation channels comprise: an inlet channel to receive printing fluid from one of the plurality of fluid feedhole slots; an outlet channel; and a drop ejector arranged within the plurality of recirculation channels between the inlet channel and the outlet channel and beneath a nozzle; and
wherein the plurality of fluid feedhole slots and the plurality of recirculation channels are arranged such that responsive to signals indicative of pressure vectors, printing fluid is to flow through the plurality of recirculation channels in a non-drop ejection mode.

16. The fluid ejection device of claim 15, wherein the outlet channel is arranged to transmit printing fluid to the one of the plurality of fluid feedhole slots.

17. The fluid ejection device of claim 15, wherein the inlet channel is a different length from the outlet channel.

18. The fluid ejection device of claim 15, wherein the plurality of recirculation channels corresponds to short loop recirculation channels.

19. A fluid ejection system comprising:

a fluid ejection pen comprising a fluid ejection device comprising: a plurality of fluid feedhole slots in fluid communication with a plurality of recirculation channels, the plurality of recirculation channels corresponding to short loop recirculation channels;
the fluid ejection pen arranged to form images on media received from a media roll feed mechanism of a media handling system; and
electrical connectors via which may be transmitted signals indicative of pressure vectors to cause printing fluid to recirculate through the plurality of recirculation channels.

20. The fluid ejection system of claim 19, wherein the short loop recirculation channels correspond to asymmetric recirculation channels.

Referenced Cited
U.S. Patent Documents
3552207 January 1971 Monk et al.
3856467 December 1974 Picker
4318114 March 2, 1982 Huliba
5412411 May 2, 1995 Anderson
5764258 June 9, 1998 Hetzer et al.
5807749 September 15, 1998 Hornemann
5818485 October 6, 1998 Rezanka
5820260 October 13, 1998 Vander Heyden et al.
6010316 January 4, 2000 Haller et al.
6017117 January 25, 2000 McClelland et al.
6055002 April 25, 2000 Wen et al.
6079873 June 27, 2000 Cavicchi et al.
6106091 August 22, 2000 Osawa et al.
6152559 November 28, 2000 Kojima
6193413 February 27, 2001 Lieberman
6227660 May 8, 2001 McClelland et al.
6227824 May 8, 2001 Stehr
6244694 June 12, 2001 Weber et al.
6283718 September 4, 2001 Prosperetti et al.
6351879 March 5, 2002 Furlani et al.
6360775 March 26, 2002 Barth et al.
6431694 August 13, 2002 Ross
6450773 September 17, 2002 Upton
6467887 October 22, 2002 Lopez et al.
6481984 November 19, 2002 Shinohara et al.
6568799 May 27, 2003 Yang et al.
6631983 October 14, 2003 Romano, Jr. et al.
6645432 November 11, 2003 Anderson et al.
6655924 December 2, 2003 Ma
6730206 May 4, 2004 Ricco et al.
6752493 June 22, 2004 Dowell et al.
6910797 June 28, 2005 Falcon
6953236 October 11, 2005 Silverbrook
7025323 April 11, 2006 Krulevitch et al.
7040745 May 9, 2006 Kent
7049558 May 23, 2006 Baer et al.
7094040 August 22, 2006 Higashino et al.
7097287 August 29, 2006 Nakao et al.
7118189 October 10, 2006 Kuester et al.
7182442 February 27, 2007 Sheinman
7204585 April 17, 2007 Bruinsma et al.
7217395 May 15, 2007 Sander
7291512 November 6, 2007 Unger
7427274 September 23, 2008 Harris et al.
7470004 December 30, 2008 Eguchi et al.
7543923 June 9, 2009 McNestry
7647860 January 19, 2010 Cresswell et al.
7727478 June 1, 2010 Higashino et al.
7762719 July 27, 2010 Fon et al.
7763453 July 27, 2010 Clemmens et al.
7784495 August 31, 2010 Prakash et al.
7832429 November 16, 2010 Young et al.
7871160 January 18, 2011 Kang et al.
8286656 October 16, 2012 Rastegar et al.
8329118 December 11, 2012 Padmanabhan et al.
8439481 May 14, 2013 Xie et al.
20010030130 October 18, 2001 Ricco et al.
20020009374 January 24, 2002 Higashino
20020079008 June 27, 2002 Chien et al.
20020098122 July 25, 2002 Singh et al.
20020156383 October 24, 2002 Altman et al.
20020197167 December 26, 2002 Kornelsen
20030215342 November 20, 2003 Higashino et al.
20040024002 February 5, 2004 Burnett et al.
20040063217 April 1, 2004 Webster et al.
20040180377 September 16, 2004 Manger et al.
20040200724 October 14, 2004 Fujii et al.
20040202548 October 14, 2004 Dai et al.
20040224002 November 11, 2004 Fishman et al.
20050052513 March 10, 2005 Inoue
20050069425 March 31, 2005 Gray et al.
20050092662 May 5, 2005 Gilbert et al.
20050129529 June 16, 2005 Cho
20050196304 September 8, 2005 Richter et al.
20050220630 October 6, 2005 Bohm
20050249607 November 10, 2005 Klee
20050282054 December 22, 2005 Ishida et al.
20060046300 March 2, 2006 Padmanabhan et al.
20060051218 March 9, 2006 Harttig
20060123892 June 15, 2006 Brekelmans et al.
20070026421 February 1, 2007 Sundberg et al.
20070286254 December 13, 2007 Fon et al.
20070291082 December 20, 2007 Baumer et al.
20080007604 January 10, 2008 Kang et al.
20080047836 February 28, 2008 Strand et al.
20080050283 February 28, 2008 Chou et al.
20080055378 March 6, 2008 Drury et al.
20080079791 April 3, 2008 Kang et al.
20080087584 April 17, 2008 Johnson et al.
20080118790 May 22, 2008 Kim et al.
20080138247 June 12, 2008 Inganas et al.
20080143793 June 19, 2008 Okuda
20080260582 October 23, 2008 Gauer et al.
20090007969 January 8, 2009 Gundel
20090014360 January 15, 2009 Toner et al.
20090027429 January 29, 2009 Jung
20090027458 January 29, 2009 Leighton et al.
20090038938 February 12, 2009 Mezic et al.
20090040257 February 12, 2009 Bergstedt et al.
20090052494 February 26, 2009 Wijffels
20090079789 March 26, 2009 Silverbrook
20090128922 May 21, 2009 Justis et al.
20090147822 June 11, 2009 Tokhtuev et al.
20090148933 June 11, 2009 Battrell et al.
20090246086 October 1, 2009 Barbier et al.
20090270834 October 29, 2009 Nisato et al.
20090297372 December 3, 2009 Amirouche et al.
20100013887 January 21, 2010 Suh
20100024572 February 4, 2010 Roukes et al.
20100101764 April 29, 2010 Yang
20100173393 July 8, 2010 Handique et al.
20100212762 August 26, 2010 Toonder et al.
20100328403 December 30, 2010 Xie et al.
20110240752 October 6, 2011 Meacham et al.
20110286493 November 24, 2011 Torniainen et al.
20120015376 January 19, 2012 Bornhop
20120098907 April 26, 2012 Xie et al.
20120244604 September 27, 2012 Kornilovich et al.
20130061962 March 14, 2013 Kornilovich et al.
20130083136 April 4, 2013 Govyadinov et al.
20150091989 April 2, 2015 Govyadinov et al.
20170239946 August 24, 2017 Nakagawa
20180257384 September 13, 2018 Hara
20190210361 July 11, 2019 Martin
20200282738 September 10, 2020 Chen
Foreign Patent Documents
2444525 April 2004 CA
1498761 May 2004 CN
1678460 October 2005 CN
101100137 January 2008 CN
101267885 September 2008 CN
101287606 October 2008 CN
101306792 November 2008 CN
1673528 February 2009 CN
101391530 March 2009 CN
0317171 May 1989 EP
0568902 November 1993 EP
1052099 November 2000 EP
1518683 March 2005 EP
2018969 January 2009 EP
0526170 February 1993 JP
10175307 June 1998 JP
2001205810 July 2001 JP
2001-322099 November 2001 JP
2003-527616 September 2003 JP
2003528276 September 2003 JP
2003-286940 October 2003 JP
2003-534538 November 2003 JP
2004-513342 April 2004 JP
2004-169706 June 2004 JP
2004-190614 July 2004 JP
2004249741 September 2004 JP
2005125668 May 2005 JP
2006510854 March 2006 JP
2006512545 April 2006 JP
2006156894 June 2006 JP
2006272614 October 2006 JP
2007224844 September 2007 JP
2008162270 July 2008 JP
2009117344 May 2009 JP
2009190370 August 2009 JP
20030059797 July 2003 KR
10-2005-0023512 March 2005 KR
20080004095 January 2008 KR
20090082563 July 2009 KR
20090108371 October 2009 KR
WO-0171226 September 2001 WO
WO-2008091294 July 2008 WO
2010/044775 April 2010 WO
Other references
  • A Stepper Micropump for Ferrofluid Driven Microfluidic Systems; http://www.bentham.org/mns/samples/mns%201-1/0004MNS.pdf> Publication Date: 2009; On pp. 17-21; Nam-Trung Nguyen et al.
  • Cindy Hany et al; Thermal Analysis Of Chemical Reaction With A Continuous Microfluidic Calorimeter; Chemical Engineering Journal 160 (2010); Jul. 10, 2009; pp. 814-822.
  • Daniel C. Leslie, et. al.; Frequency-specific Flow Control in Microfluidic Circuits with Passive Elastomeric Features; Nature Physics; Feb. 1, 2009; pp. 231-235.
  • Fadl et al; “The effect of the Microfluidic Diodicity on the Efficiency of Valve-Less Rectification Micropumps Using Lattice Boltzmann Method”; Microsyst Technol; Jul. 2009.
  • Inkjet Photo Printers, Ink, Paper, and Laser Toner Too!; InkJet Printers Paper Reviews; inkjethelper.com.
  • Koltay et al; “Non-Contact Liquid Handling: Basics and Technologies”; http://www.labautopedia.com/mw/index.php/Non-Contact Liquid Handling: Basics and Technologies.
  • Leslie Y. Yeo et al, Fast Inertial Microfluidic Actuation and Manipulation Using Surface Acoustic Waves; FEDSM-ICNMM2010 Meeting; Aug. 1-5, 2010, pp. 1-8.
  • Micropumps, Microvalves, and Micromixers Within Per Microfluidic Chips: Advances and Trends; http://laser.scnu.edu.cn/xingdaPDF/Zhang%20Chunsun%20Biotech%20Adv%202007.pdf> Publication Date: May 23, 2007; On pp. 483-514; Chunsun Zhang et al.
  • Sonia Ramirez-Garciaa, et.al.; Towards the Development of a Fully Integrated Polymeric Microfluidic Platform for Environmental Analysis; Elesvier B.V.; Apr. 12, 2008; pp. 463-467.
Patent History
Patent number: 11260668
Type: Grant
Filed: Oct 8, 2020
Date of Patent: Mar 1, 2022
Patent Publication Number: 20210023852
Assignee: Hewlett-Packard Development Company, L.P. (Spring, TX)
Inventors: Alexander Govyadinov (Corvallis, OR), Erik D Torniainen (Corvallis, OR), David P Markel (Corvallis, OR)
Primary Examiner: Lamson D Nguyen
Application Number: 17/065,831
Classifications
International Classification: B41J 2/18 (20060101); B41J 2/14 (20060101); B41J 2/175 (20060101); F04B 19/00 (20060101); F04B 19/20 (20060101); F04B 19/24 (20060101); B01L 3/00 (20060101);